TY - GEN
T1 - Design and Control of a Flexible Actuator Joint for Lower Limb Exoskeleton Robot
AU - Wang, Yapeng
AU - Geng, Yunhai
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Lower limb exoskeleton robots provide assistance to the wearer through a human-robot interaction device. However, the joint actuators are unable to adjust their stiffness according to the wearer's load, walking speed, or other factors, limiting the adaptability of the exoskeleton to different scenarios and compromising safety during human-robot interaction. This paper explores the design and control methods of flexible actuator joints in lower limb exoskeleton robots. A variable stiffness joint, based on the principle of leaf spring adjustment, is designed. A stiffness model of the variable stiffness mechanism is established using deformation screw theory, and the influence of the effective length of the leaf spring on joint stiffness is analyzed. For the designed flexible actuator joint, a torque controller and impedance control strategy, based on gain scheduling and a disturbance observer, are proposed. Controller simulation analysis is performed to achieve compliant joint motion control.
AB - Lower limb exoskeleton robots provide assistance to the wearer through a human-robot interaction device. However, the joint actuators are unable to adjust their stiffness according to the wearer's load, walking speed, or other factors, limiting the adaptability of the exoskeleton to different scenarios and compromising safety during human-robot interaction. This paper explores the design and control methods of flexible actuator joints in lower limb exoskeleton robots. A variable stiffness joint, based on the principle of leaf spring adjustment, is designed. A stiffness model of the variable stiffness mechanism is established using deformation screw theory, and the influence of the effective length of the leaf spring on joint stiffness is analyzed. For the designed flexible actuator joint, a torque controller and impedance control strategy, based on gain scheduling and a disturbance observer, are proposed. Controller simulation analysis is performed to achieve compliant joint motion control.
KW - Lower limb exoskeleton
KW - gain scheduling control
KW - variable stiffness actuator
UR - https://www.scopus.com/pages/publications/105002680326
U2 - 10.1109/CITSC64390.2025.00102
DO - 10.1109/CITSC64390.2025.00102
M3 - 会议稿件
AN - SCOPUS:105002680326
T3 - Proceedings - 2025 Asia-Europe Conference on Cybersecurity, Internet of Things and Soft Computing, CITSC 2025
SP - 531
EP - 537
BT - Proceedings - 2025 Asia-Europe Conference on Cybersecurity, Internet of Things and Soft Computing, CITSC 2025
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2025 Asia-Europe Conference on Cybersecurity, Internet of Things and Soft Computing, CITSC 2025
Y2 - 10 January 2025 through 12 January 2025
ER -